Thermal conductivity measurements of porous dust aggregates: I. Technique, model and first results
arXiv:1101.2586 · doi:10.1016/j.icarus.2011.04.024
Abstract
We present a non-invasive technique for measuring the thermal conductivity of fragile and sensitive materials. In the context of planet formation research, the investigation of the thermal conductivity of porous dust aggregates provide important knowledge about the influence of heating processes, like internal heating by radioactive decay of short-lived nuclei, e.g. 26Al, on the evolution and growth of planetesimals. The determination of the thermal conductivity was performed by a combination of laboratory experiments and numerical simulations. An IR camera measured the temperature distribution of the sample surface heated by a well-characterized laser beam. The thermal conductivity as free parameter in the model calculations, exactly emulating the experiment, was varied until the experimental and numerical temperature distributions showed best agreement. Thus, we determined for three types of porous dust samples, consisting of spherical, micrometer-sized SiO2 particles, with volume filling factors in the range of 15% to 54%, the thermal conductivity to be 0.002 to 0.02 W/(m*K), respectively. From our results, we can conclude that the thermal conductivity mainly depends on the volume filling factor. Further investigations, which are planned for different materials and varied contact area sizes (produced by sintering), will prove the appropriate dependencies in more detail.
accepted by Icarus
References in corpus (3)
- The outcome of protoplanetary dust growth: pebbles, boulders, or planetesimals? II. Introducing the bouncing barrier
- The outcome of protoplanetary dust growth: pebbles, boulders, or planetesimals? I. Mapping the zoo of laboratory collision experiments
- Meteoritical and dynamical constraints on the growth mechanisms and formation times of asteroids and Jupiter
Cited by in corpus (35)
- The stickiness of micrometer-sized water-ice particles
- Dust release and tensile strength of the non-volatile layer of cometary nuclei
- Free Collisions in a Microgravity Many-Particle Experiment. I. Dust Aggregate Sticking at Low Velocities
- Outgassing of icy bodies in the Solar System - II. Heat transport in dry, porous surface dust layers
- Outgassing of icy bodies in the solar system - I. The sublimation of hexagonal water ice through dust layers
- The thermal, mechanical, structural, and dielectric properties of cometary nuclei after Rosetta
- Thermal evolution and sintering of chondritic planetesimals
- Thermal history modeling of the H chondrite parent body
- Photophoretic separation of metals and silicates: the formation of Mercury like planets and metal depletion in chondrites
- Experiments on centimeter-sized dust aggregates and their implications for planetesimal formation
- From Planetesimals to Dust: Low Gravity Experiments on Recycling Solids at the Inner Edge of Protoplanetary Disks
- Thermal evolution and sintering of chondritic planetesimals III. Modelling the heat conductivity of porous chondrite material
- Evidence for differentiation of the most primitive small bodies
- Survival of water ice in Jupiter Trojans
- Thermal conductivity of porous aggregates
- Thermal conductivity and coordination number of compressed dust aggregates
- Asteroid thermal modeling in the presence of reflected sunlight with an application to WISE/NEOWISE observational data
- Thermal and Photophoretic Properties of Dust Mantled Chondrules and Sorting in the Solar Nebula
- Constraining the detectability of water ice in debris disks
- Thermal Shadows and Compositional Structure in Comet Nuclei
- Scattering, absorption, and thermal emission by large cometary dust particles: Synoptic numerical solution
- Cometary surface dust layers built out of millimetre-scale aggregates: dependence of modelled cometary gas production on the layer transport properties
- Geometrical structure and thermal conductivity of dust aggregates formed via ballistic cluster-cluster aggregation
- The Dust Mantle of Comet 9P/Tempel 1: Dynamical Constraints on Physical Properties
- Incomplete cooling down of Saturn's A ring at solar equinox: Implication for seasonal thermal inertia and internal structure of ring particles
- The gateway from Centaurs to Jupiter-family Comets: thermal and dynamical evolution
- Photophoresis boosts giant planet formation
- On averaging eccentric orbits: Implications for the long-term thermal evolution of comets
- Laboratory experiments on the sublimation of methane through ice dust layers and applications to cometary activity
- Photophoretic Levitation and Trapping of Dust in the Inner Regions of Protoplanetary Disks
- Interpebble contact radius in a comet nucleus
- Dust photophoretic transport around a T Tauri star: Implications for comets composition
- Disruption of Saturn's ring particles by thermal stress
- Numerical Validation of the Yarkovsky Effect in Super-Fast Rotating Asteroids
- Numerical Investigation on the Compressive Behavior of Hierarchical Granular Piles